A door assembly for a vehicle includes an outer panel. A support panel is operatively connected to the outer panel and configured such that the support panel provides bending resistance to the outer panel when the outer panel is deflected toward the support panel during a first deflection distance of the outer panel. A cable is operatively connected in the door assembly between a first end and a second end of the outer panel such that the cable provides additional bending resistance to the outer panel when the outer panel is deflected toward the support panel during a second deflection distance of the outer panel, greater than the first deflection distance.
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1. A vehicle comprising:
a body including a forward pillar and a rearward pillar extending in spaced relationship to said forward pillar;
wherein said forward pillar and said rearward pillar define an opening therebetween;
a door assembly pivotally disposed in said opening including;
a door shell extending between a front end and a rear end, wherein said door shell includes an outer panel presenting an interior surface opposing an exterior surface and an inner panel operatively connected to said outer panel;
a hinge plate operatively attached to said inner panel, at said front end;
wherein said front end of said inner panel is pivotally attached to said forward pillar;
a latch plate operatively attached to said inner panel, at said rear end;
wherein said latch plate is configured to selectively latch said door assembly to said rearward pillar;
wherein each of said hinge plate and said latch plate are configured to transfer loads between said door shell and the vehicle;
a support panel disposed between said outer panel and said inner panel and presenting a first surface opposing a second surface, wherein said first surface of said support panel faces said interior surface of said outer panel;
wherein said support panel is attached to only said outer panel of said door shell such that said support panel provides bending resistance to said outer panel when said outer panel is deflected toward said inner panel a first deflection distance;
a cable operatively connected to said front end of said door shell at said hinge plate and said rear end of said door shell at said latch plate, wherein said cable is configured to extend in slack relationship between said front end and said rear end of said door shell when the first deflection distance is reached; and
wherein said cable is configured to become engaged when the first deflection distance is reached to provide additional resistance to movement of said outer panel when said outer panel is deflected toward said inner panel.
3. A door assembly, as set forth in
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8. A door assembly, as set forth in
9. A door assembly, as set forth in
10. A door assembly, as set forth in
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15. A door assembly, as set forth in
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The present invention relates to a reinforcement system for a door assembly of a vehicle.
A typical door assembly of a vehicle extends between a front end and a rear end. The door assembly includes an outer panel and an inner panel. The outer panel is attached to the inner panel at the front and rear ends of the door assembly to define a door cavity there between. An intrusion beam or panel is disposed within the door cavity and extends between the front and rear ends. The intrusion beam is typically formed from steel. The intrusion beam is operative to provide energy absorption through bending resistance to the door assembly in an impact event as the outer panel is deflected toward the inner panel.
This invention provides an efficient, lightweight solution for door stiffness and bending resistance in a vehicle door. Thus, a door assembly for a vehicle includes a door shell extending between a front end and a rear end. The door shell includes an outer panel presenting an interior surface opposing an exterior surface and an inner panel operatively connected to the outer panel. A support panel is disposed between the outer panel and the inner panel and presents a first surface opposing a second surface. The first surface of the support panel faces the interior surface of the outer panel such that the support panel provides bending resistance to the outer panel when the outer panel is deflected toward the inner panel. A cable is operatively connected to at least one of the support panel and the door shell, wherein the cable extends between the front end and the rear end of the door shell such that the cable provides additional resistance to movement of the outer panel when the outer panel is deflected toward the inner panel.
A method of reinforcing a door assembly of a vehicle includes attaching a support panel to a door shell of the door assembly to provide bending resistance to the door assembly as the outer panel is deflected toward the inner panel a first distance. A cable is attached between a front end and a rear end of the door shell of the door assembly to provide additional resistance to movement of the door assembly as the outer panel is deflected toward the inner panel a second distance, beyond the first distance.
A reinforcement system for a door assembly of a vehicle having a door shell includes an outer panel presenting an interior surface opposing an exterior surface and an inner panel operatively connects to the outer panel. The support panel presents a first surface opposing a second surface. The support panel is for operative connection to the door shell such that the first surface of the support panel faces the interior surface of the outer panel and the support panel provides bending resistance to the outer panel when the outer panel of the door assembly is deflected toward the inner panel. A cable is for operative connection to the door shell and/or the support panel such that the cable provides additional resistance to movement of the outer panel when the outer panel is deflected toward the inner panel.
Accordingly, a lightweight door assembly may be provided by combining a composite support panel and a cable in the door assembly. In addition to being lightweight, the combination of the support panel and the cable assembly provides bending resistance and intrusion resistance to the door assembly as the outer panel is deflected.
The above features and advantages and other features and advantages of the present invention are readily apparent from the following detailed description of the best modes for carrying out the invention when taken in connection with the accompanying drawings.
Referring now to the figures, which are exemplary embodiments and wherein like elements are numbered alike:
Referring to the drawings, wherein like reference numbers refer to like components,
Referring also to
The door assembly 10 also includes a plurality of plates 50, as shown in
Referring to
In another embodiment, the support panel 62 may also include at least one front tab 78 extending generally perpendicularly from the first end 66 and at least one rear tab 80 extending generally perpendicularly from the second end 68, as shown in
Referring to
Referring again to
In one embodiment, the attachment ends 86, 88 are connected to the respective ends of the door assembly 10 using a bracket 92, as shown in
In another embodiment for attaching the attachment ends 86, 88 of the cable 85 to the door assembly 10, a bent-over segment 100 extends from an edge 102 of the plate 50, as shown in
When the cable assembly 64 is attached to the door assembly 10, the cable 85 is preferably slack, i.e., not in tension, as shown in
The cable assembly 64 may be further attached to the door assembly 10 in additional ways. In one embodiment, cable 85 portions of the assembly 64 may be molded integrally into the support panel 62 with the attachment ends 86, 88 exposed and fastened to the latch and hinge plates 54, 52, respectively, such that there is sufficient slack to engage, i.e., become taut, at the predetermined deflection position for engaging the body pillars 16, 18 in an impact or intrusion event. In another embodiment, the cable assembly 64 is installed as a separate component during door assembly and, may be affixed to the door inner panel 32 or to the support panel 62, i.e., on either side of window glass (not shown), with an appropriate slack. It should be appreciated, however, that with any embodiment, the cable assembly 64 would have to be assembled in such a way as to avoid rattling during operation of the vehicle 12.
While the best modes for carrying out the invention have been described in detail, those familiar with the art to which this invention relates will recognize various alternative designs and embodiments for practicing the invention within the scope of the appended claims.
Owens, John N., Huang, Hui-Min, Hsu, Chih-Cheng, Carsley, John E., Koshorek, Stephen R., Butlin, Albert H.
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